Exchange interaction in gate-defined quantum dots beyond the Hubbard model
- URL: http://arxiv.org/abs/2511.23277v1
- Date: Fri, 28 Nov 2025 15:29:31 GMT
- Title: Exchange interaction in gate-defined quantum dots beyond the Hubbard model
- Authors: Alexander Willmes, Patrick Bethke, M. Mohamed El Kordy Shehata, George Simion, M. A. Wolfe, Tim Botzem, Robert P. G. McNeil, Julian Ritzmann, Arne Ludwig, Andreas D. Wieck, Dieter Schuh, Dominique Bougeard, Hendrik Bluhm,
- Abstract summary: We measure the detuning dependence of the exchange coupling in a GaAs double quantum dot over three orders of magnitude.<n>Both 1D and 3D full configuration interaction simulations can replicate the observed behavior.
- Score: 28.404018926483985
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: A quantitative description of the exchange interaction in quantum dots is relevant for modeling gate operations of spin qubits. By measuring the amplitude and frequency of exchange-driven qubit state oscillations, we measure the detuning dependence of the exchange coupling in a GaAs double quantum dot over three orders of magnitude. Both 1D and 3D full configuration interaction simulations can replicate the observed behavior. Extending a Hubbard model by including excited states increases the range of detuning where it provides a good fit, thus elucidating the underlying physics.
Related papers
- Hybrid quantum lattice model: Polaritons, photons, and spin waves propagation [0.0]
Controlling the propagation of quantum excitations in low-dimensional systems is pivotal for quantum technologies.<n>We propose a one-dimensional hybrid quantum lattice model, where each lattice unit integrates a single-mode resonator that interacts with a two-level system.<n>This configuration enables the coherent propagation of polaritons, spin waves, and photons, depending on the interplay between light-matter coupling and qubit-qubit interactions.
arXiv Detail & Related papers (2025-07-16T15:12:25Z) - Nonlinear dynamical Casimir effect and Unruh entanglement in waveguide QED with parametrically modulated coupling [83.88591755871734]
We study theoretically an array of two-level qubits moving relative to a one-dimensional waveguide.
When the frequency of this motion approaches twice the qubit resonance frequency, it induces parametric generation of photons and excitation of the qubits.
We develop a comprehensive general theoretical framework that incorporates both perturbative diagrammatic techniques and a rigorous master-equation approach.
arXiv Detail & Related papers (2024-08-30T15:54:33Z) - Variational waveguide QED simulators [58.720142291102135]
Waveguide QED simulators are made by quantum emitters interacting with one-dimensional photonic band-gap materials.
Here, we demonstrate how these interactions can be a resource to develop more efficient variational quantum algorithms.
arXiv Detail & Related papers (2023-02-03T18:55:08Z) - A scalable superconducting quantum simulator with long-range
connectivity based on a photonic bandgap metamaterial [0.0]
We present a quantum simulator architecture based on a linear array of qubits locally connected to a superconducting photonic-bandgap metamaterial.
The metamaterial acts both as a quantum bus mediating qubit-qubit interactions, and as a readout channel for multiplexed qubit-state measurement.
We characterize the Hamiltonian of the system using a measurement-efficient protocol based on quantum many-body chaos.
arXiv Detail & Related papers (2022-06-26T06:51:54Z) - Tunable photon-mediated interactions between spin-1 systems [68.8204255655161]
We show how to harness multi-level emitters with several optical transitions to engineer photon-mediated interactions between effective spin-1 systems.
Our results expand the quantum simulation toolbox available in cavity QED and quantum nanophotonic setups.
arXiv Detail & Related papers (2022-06-03T14:52:34Z) - Tuning long-range fermion-mediated interactions in cold-atom quantum
simulators [68.8204255655161]
Engineering long-range interactions in cold-atom quantum simulators can lead to exotic quantum many-body behavior.
Here, we propose several tuning knobs, accessible in current experimental platforms, that allow to further control the range and shape of the mediated interactions.
arXiv Detail & Related papers (2022-03-31T13:32:12Z) - Quantum amplification of boson-mediated interactions [0.0]
We experimentally demonstrate the amplification of a boson-mediated interaction between two trapped-ion qubits by parametric modulation of the trapping potential.
The technique can be used in any quantum platform where parametric modulation of the boson channel is possible.
arXiv Detail & Related papers (2020-09-29T23:22:55Z) - Dynamic generation of GHZ states with coupled charge qubits [0.0]
We present a proof-of-principle of the formation of maximally entangled states from the Greenberger-Horne-Zeilinger class.
The interplay between coherent tunneling events and many-body interaction gives rise to the formation of highly entangled states.
arXiv Detail & Related papers (2020-09-09T21:01:37Z) - State preparation and measurement in a quantum simulation of the O(3)
sigma model [65.01359242860215]
We show that fixed points of the non-linear O(3) sigma model can be reproduced near a quantum phase transition of a spin model with just two qubits per lattice site.
We apply Trotter methods to obtain results for the complexity of adiabatic ground state preparation in both the weak-coupling and quantum-critical regimes.
We present and analyze a quantum algorithm based on non-unitary randomized simulation methods.
arXiv Detail & Related papers (2020-06-28T23:44:12Z) - Interplay of exchange and superexchange in triple quantum dots [0.0]
Recent experiments on semiconductor quantum dots have demonstrated the ability to utilize a large quantum dot to mediate superexchange interactions.
We show that superexchange processes strongly enhance and increase the range of the net spin-spin exchange as the dots approach a linear configuration.
Our results can be used as a guide to assist further experimental efforts towards scaling up to larger, two-dimensional quantum dot arrays.
arXiv Detail & Related papers (2020-03-06T20:11:16Z) - Quantum Statistical Complexity Measure as a Signalling of Correlation
Transitions [55.41644538483948]
We introduce a quantum version for the statistical complexity measure, in the context of quantum information theory, and use it as a signalling function of quantum order-disorder transitions.
We apply our measure to two exactly solvable Hamiltonian models, namely: the $1D$-Quantum Ising Model and the Heisenberg XXZ spin-$1/2$ chain.
We also compute this measure for one-qubit and two-qubit reduced states for the considered models, and analyse its behaviour across its quantum phase transitions for finite system sizes as well as in the thermodynamic limit by using Bethe ansatz.
arXiv Detail & Related papers (2020-02-05T00:45:21Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.